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A parallel computational model for integrated speech and natural language understanding

机译:集成语音和自然语言理解的并行计算模型

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Presents a parallel approach for integrating speech and natural language understanding. The method emphasizes a hierarchically-structured knowledge base and memory-based parsing techniques. Processing is carried out by passing multiple markers in parallel through the knowledge base. Speech specific problems such as insertion, deletion, substitution, and word boundary detection have been analyzed and their parallel solutions are provided. Results on the SNAP-1 multiprocessor show an 80% sentence recognition rate for the Air Traffic Control (ATC) domain. Furthermore, speed-up of up to 15-fold is obtained from the parallel platform which provides response times of a few seconds per sentence for the ATC domain.
机译:提出了一种整合语音和自然语言理解的并行方法。该方法强调分层结构的知识库和基于内存的解析技术。通过并行地将多个标记传递给知识库来进行处理。分析了语音特定问题,例如插入,删除,替换和单词边界检测,并提供了它们的并行解决方案。 SNAP-1多处理器上的结果显示,空中交通管制(ATC)域的句子识别率为80%。此外,从并行平台可获得高达15倍的加速,该并行平台为ATC域提供了每句话几秒钟的响应时间。

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